[gitsunmin] Week 6 Solutions #470
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| /** | ||
| * https://leetcode.com/problems/container-with-most-water/ | ||
| * time complexity : O(n) | ||
| * space complexity : O(1) | ||
| */ | ||
| export function maxArea(height: number[]): number { | ||
| let s = 0, e = height.length - 1, max = 0; | ||
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| while (s < e) { | ||
| max = Math.max((e - s) * Math.min(height[s], height[e]), max); | ||
| if (height[s] < height[e]) s++; | ||
| else e--; | ||
| } | ||
| return max; | ||
| }; |
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| @@ -0,0 +1,58 @@ | ||
| /** | ||
| * https://leetcode.com/problems/design-add-and-search-words-data-structure | ||
| * n: The total number of words stored in the Trie. | ||
| * m: The average length of each word. | ||
| * | ||
| * time complexity: | ||
| * - addWord: O(m) | ||
| * - search: O(26^m) in the worst case (with multiple wildcards) to O(m) in general cases. | ||
| * space complexity: O(n * m) | ||
| */ | ||
| class TrieNode { | ||
| children: Map<string, TrieNode>; | ||
| isEnd: boolean; | ||
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| constructor() { | ||
| this.children = new Map(); | ||
| this.isEnd = false; | ||
| } | ||
| } | ||
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| export class WordDictionary { | ||
| private root: TrieNode; | ||
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| constructor() { | ||
| this.root = new TrieNode(); | ||
| } | ||
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| addWord(word: string): void { | ||
| let node = this.root; | ||
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| for (const char of word) { | ||
| if (!node.children.has(char)) node.children.set(char, new TrieNode()); | ||
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| node = node.children.get(char)!; | ||
| } | ||
| node.isEnd = true; | ||
| } | ||
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| search(word: string): boolean { | ||
| return this.searchInNode(word, 0, this.root); | ||
| } | ||
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| private searchInNode(word: string, index: number, node: TrieNode): boolean { | ||
| if (index === word.length) return node.isEnd; | ||
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| const char = word[index]; | ||
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| if (char === '.') { | ||
| for (const child of node.children.values()) { | ||
| if (this.searchInNode(word, index + 1, child)) return true; | ||
| } | ||
| return false; | ||
| } else { | ||
| if (!node.children.has(char)) return false; | ||
| return this.searchInNode(word, index + 1, node.children.get(char)!); | ||
| } | ||
| } | ||
| } | ||
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| @@ -0,0 +1,21 @@ | ||
| /** | ||
| * https://leetcode.com/problems/longest-increasing-subsequence | ||
| * time complexity : O(n) | ||
|
There was a problem hiding this comment. 비록 while 문 내에 별도 로직이 없더라도, 현재 코드상으로는 시간복잡도가 O(n^2)의 형태가 아닐까요? There was a problem hiding this comment. 제가 시간 복잡도를 잘못 계산한것같아요 수정했습니다! 감사합니다1 |
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| * space complexity : O(n) | ||
| */ | ||
| function lengthOfLIS(nums: number[]): number { | ||
| const [head] = nums; | ||
| const basket = [head]; | ||
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| for (let i = 1; i < nums.length; i++) { | ||
| const current = nums[i]; | ||
| let j = 0; | ||
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| while (j < basket.length && basket[j] < current) j++; | ||
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| if (j === basket.length) basket.push(current); | ||
| else basket[j] = current; | ||
| } | ||
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| return basket.length; | ||
| }; | ||
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|---|---|---|
| @@ -0,0 +1,32 @@ | ||
| /** | ||
| * https://leetcode.com/problems/spiral-matrix/ | ||
| * time complexity : O(m * n) | ||
| * space complexity : O(m * n) | ||
| */ | ||
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| function spiralOrder(matrix: number[][]): number[] { | ||
| let [left, right] = [0, matrix[0].length - 1]; | ||
| let [top, bottom] = [0, matrix.length - 1]; | ||
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| const output = [] as number[]; | ||
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| while (top <= bottom && left <= right) { | ||
| for (let i = left; i <= right; i++) output.push(matrix[top][i]); | ||
| top++; | ||
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| for (let i = top; i <= bottom; i++) output.push(matrix[i][right]); | ||
| right--; | ||
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| if (top <= bottom) { | ||
| for (let i = right; i >= left; i--) output.push(matrix[bottom][i]); | ||
| bottom--; | ||
| } | ||
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| if (left <= right) { | ||
| for (let i = bottom; i >= top; i--) output.push(matrix[i][left]); | ||
| left++; | ||
| } | ||
| } | ||
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| return output; | ||
| }; |
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| @@ -0,0 +1,25 @@ | ||
| /** | ||
| * https://leetcode.com/problems/valid-parentheses/ | ||
| * time complexity : O(n) | ||
| * space complexity : O(n) | ||
| */ | ||
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| type OpeningBracket = '(' | '[' | '{'; | ||
| type ClosingBracket = ')' | ']' | '}'; | ||
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| const isEmpty = (stack: OpeningBracket[]): boolean => stack.length === 0; | ||
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| function isValid(s: string): boolean { | ||
| const m = new Map<string, ClosingBracket>([ | ||
| ['(', ')'], | ||
| ['[', ']'], | ||
| ['{', '}'] | ||
| ]); | ||
| const stack: OpeningBracket[] = []; | ||
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| for (const c of s) { | ||
| if (m.has(c)) stack.push(c as OpeningBracket); | ||
| else if (isEmpty(stack) || c !== m.get(stack.pop() as OpeningBracket)) return false; | ||
| } | ||
| return isEmpty(stack); | ||
| }; | ||
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공간 복잡도도 메서드별로 개별적으로 평가 해 주시는 것이 좋지 않을까요?
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@HC-kang 아 넵 공간 복잡도는 두 메서드가 모두 같아서 하나로 작성했었는데, 두 개로 나누어 작성해둘게요